Skip to main content
Log in

Numerically framing the impact of radiation on magnetonanoparticles for 3D Sisko fluid flow

  • Technical Paper
  • Published:
Journal of the Brazilian Society of Mechanical Sciences and Engineering Aims and scope Submit manuscript

Abstract

A numerical investigation is carried out to study the three-dimensional Sisko fluid flow in the presence of nonlinear thermal radiation and convective boundary conditions over a bidirectional stretching surface. In addition, the impact of newly suggested model for nanofluid is considered that requires nanoparticles volume fraction at the wall to be passively rather than strongly controlled. The numerical solutions for resulting flow, heat, and mass transfer have been computed utilizing the two different techniques, namely, the bvp4c function in Matlab and shooting method with Runge–Kutta–Fehlberg and Newton–Raphson methods. It is perceived that the temperature profile declines as the power-law index enhances. Furthermore, it is anticipated from the graphs that the concentration profile decays as the Brownian motion parameter rises, while the opposite behavior is observed for the thermophoresis parameter. In addition, these results are more prominent for shear-thinning fluids when compared with shear-thickening fluids. To see the validity of the numerical computations, we compare the results of the shooting technique with the bvp4c and perceived an excellent agreement. The numerical solutions obtained in the limiting cases have shown an admirable agreement with the existing literature

This is a preview of subscription content, log in via an institution to check access.

Access this article

Price excludes VAT (USA)
Tax calculation will be finalised during checkout.

Instant access to the full article PDF.

Fig. 1
Fig. 2
Fig. 3
Fig. 4
Fig. 5
Fig. 6
Fig. 7
Fig. 8
Fig. 9
Fig. 10
Fig. 11
Fig. 12
Fig. 13

Similar content being viewed by others

References

  1. Choi SUS (1995) Enhancing thermal conductivity of fluids with nanoparticles. ASME, FED 231

  2. Kuznetsov AV, Nield DA (2010) Natural convective boundary-layer flow of a nanofluid past a vertical plate. Int J Therm Sci 49:243–247

    Article  Google Scholar 

  3. Pal D, Mondal H (2011) Effects of Soret Dufour, chemical reaction and thermal radiation on MHD non-Darcy unsteady mixed convective heat and mass transfer over a stretching sheet. Commun Nonlinear Sci Numer Simulat 16:1942–1958

    Article  Google Scholar 

  4. Pal D, Mondal H (2011) MHD non-Darcian mixed convection heat and mass transfer over a non-linear stretching sheet with Soret-Dufour effects and chemical reaction. Int Commun Heat Mass Transf 38:463–467

    Article  Google Scholar 

  5. Turkyilmazoglu M (2012) Exact analytical solutions for heat and mass transfer of MHD slip flow in nanofluids. Chem Eng Sci 84:182–187

    Article  Google Scholar 

  6. Nadeem S, Haq RU, Akbar NS, Lee C, Khan ZH (2013) Numerical study of boundary layer flow and heat transfer of Oldroyd-B nanofluid towards a stretching sheet. PLoS ONE 8(8):e69811

    Article  Google Scholar 

  7. Kuznetsou AV, Nield DA (2014) Natural convective boundary-layer flow of a nanofluid past a vertical plate: a revised model. Int J Therm Sci 77:126–129

    Article  Google Scholar 

  8. Khan WA, Khan M, Malik R (2014) Three-dimensional flow of an Oldroyd-B nanofluid towards stretching surface with heat generation/absorption. PLoS ONE 9(8):e105107

    Article  Google Scholar 

  9. Rahman SU, Ellahi R, Nadeem S, Zaigham Zia QM (2016) Simultaneous effects of nanoparticles and slip on Jeffrey fluid through tapered artery with mild stenosis. J Mol Liq 218:484–493

    Article  Google Scholar 

  10. Akbarzadeh M, Rashidi S, Bovand M, Ellahi R (2016) A sensitivity analysis on thermal and pumping power for the flow of nanofluid inside a wavy channel. J Mol Liq 220:1–13

    Article  Google Scholar 

  11. Sheikholeslami M, Ellahi R (2015) Three dimensional mesoscopic simulation of magnetic field effect on natural convection of nanofluid. Int J Heat Mass Transf 89:799–808

    Article  Google Scholar 

  12. Ellahi R, Hassan M, Zeeshan A (2015) Shape effects of nanosize particles in Cu-H\(_{2}\)0 nanofluid on entropy generation. Int J Heat Mass Transf 81:449–456

    Article  Google Scholar 

  13. Sheikholeslami M, Ganji DD, Javed MY, Ellahi R (2015) Effect of thermal radiation on nanofluid magnetohydrodynamics flow and heat transfer by means of two phase model. J Mag Mag Mat 374:36–43

    Article  Google Scholar 

  14. Rehman S, Ul Haq R, Khan ZH, Lee C (2016) Entropy generation analysis of non-Newtonian nanofluid with zero normal flux of nanoparticles at the stretching surface. J Taiwan Inst Chem Eng 63:226–235

  15. Hayat T, Waqas M, Shehzad SA, Alsaedi A (2016) On model of Burgers fluid subject to magneto nanoparticles and convective conditions. J Mol Liq 222:181–187

    Article  Google Scholar 

  16. Ellahi R, Hassan M, Zeeshan A (2015) Study of natural convection MHD nanofluid by means of single and multi-walled carbon nanotubes suspended in a salt-water solution. IEEE Trans Nanotechnol 14(4):726–734

    Article  Google Scholar 

  17. Kandelousi MS, Sheikholeslami M, Ellahi R (2015) Simulation of ferrofluid flow for magnetic drug targeting using Lattice Boltzmann method. Zeitschrift für Naturforschung A 70(2):115–124

    Article  Google Scholar 

  18. Akbar NS, Raza M, Ellahi R (2015) Influence of induced magnetic field and heat flux with the suspension of carbon nanotubes for the peristaltic flow in a permeable channel. J Mag Mag Mat 381:405–415

    Article  Google Scholar 

  19. Sheikholeslami M, Ellahi R (2015) Electrohydrodynamic nanofluid hydrothermal treatment in an enclosure with sinusoidal upper wall. Appl Sci 5:294–306

    Article  Google Scholar 

  20. Sheikholeslami M, Zaigham Zia QM, Ellahi R(2016) Influence of induced magnetic field on free convection of nanofluid considering Koo-Kleinstreuer-Li (KKL) correlation. Appl Sci 6(11):324. doi:10.3390/app6110324

  21. Ellahi R, Hassan M, Zeeshan A (2016) Aggregation effects on water base nano fluid over permeable wedge in mixed convection. Asia-Pacific J Chem Eng 11(2):179–186

    Article  Google Scholar 

  22. Akbar NS, Raza M, Ellahi R (2016) Copper oxide nanoparticles analysis with water as base fluid for peristaltic flow in permeable tube with heat transfer. Comput Method Progr Biomed 130:22–30

    Article  Google Scholar 

  23. Mamourian M, Shirvan KM, Ellahi R, Rahimi AB (2016) Optimization of mixed convection heat transfer with entropy generation in a wavy surface square Lid-Driven cavity by means of Taguchi approach. Int J Heat Mass Transf 120:544–554

    Article  Google Scholar 

  24. Ellahi R, Zeeshan A, Hassan M (2016) Particle shape effects on Marangoni convection boundary layer flow of a nanofluid. Int J Numer Methods Heat Fluid Flow 26(7):2160–2174

  25. Khan M, Khan WA (2016) MHD boundary layer flow of power-law nanofluid with new mass flux condition. AIP Adv 6:025211

    Article  Google Scholar 

  26. Khan M, Khan WA, Alshomrani AS (2016) Nonlinear radiative flow of three dimensional Burgers nanofluid with new mass flux effect. Int J Heat Mass Transf 222:1003–1009

    Article  Google Scholar 

  27. Noor NFM, Abbasbandy S, Hashim I (2012) Heat and mass transfer of thermophoretic MHD flow over an inclined radiative isothermal permeable surface in the presence of heat source/sink. Int J Heat Mass Transf 55:2122–2128

    Article  Google Scholar 

  28. Chamkha AJ, Abbasbandy S, Rashad AM, Vajravelu K (2012) Radiation effects on mixed convection over a wedge embedded in a porous medium filled with a nanofluid. Transp Porous Med 91:261–279

    Article  MATH  MathSciNet  Google Scholar 

  29. Turkyilmazoglu M, Pop I (2013) Heat and mass transfer of unsteady natural convection flow of some nanofluids past a verticalinfinite flat plate with radiation effect. Int J Heat Mass Transf 59:167–171

    Article  Google Scholar 

  30. Hayat T, Imtiaz M, Alsaedi A, Kutbi MA (2015) MHD three-dimensional flow of nanofluid with velocity slip and nonlinear thermal radiation. J Mag Mag Mat 396:31–37

    Article  Google Scholar 

  31. Hayat T, Qayyum S, Imtiaz M, Alsaedi A (2016) Comparative study of silver and copper water nanofluids with mixed convection and nonlinear thermal radiation. Int J Heat Mass Transf 102:723–732

    Article  Google Scholar 

  32. Imtiaz M, Hayat T, Alsaedi A, Ahmad B (2016) Convective flow of carbon nanotubes between rotating stretchable disks with thermal radiation effects. Int J Heat Mass Transf 101:948–957

    Article  Google Scholar 

  33. Mabood F, Imtiaz M, Alsaedi A, Hayat T (2016) Unsteady convective boundary layer flow of Maxwell fluid with nonlinear thermal radiation: a numerical study. Int J Nonlinear Sci Numer Simulat 17(5):221–229

    MathSciNet  Google Scholar 

  34. Mahmood T, Ahmed J, Shahzad A, Ali R, Iqbal Z (2016) Convective heat transfer of viscous fluid over a stretching sheet embedded in a thermally stratified medium. Bulgarian Chem Comm 48(3):506–513

    Google Scholar 

  35. Ellahi R, Zeeshan A, Majeed A (2016) Effect of magnetic dipole on viscous ferro-fluid past a stretching surface with thermal radiation. J Mol Liq 215:549–554

    Article  Google Scholar 

  36. Khan M, Abbas Z, Hayat T (2008) Analytic solution for flow of Sisko fluid through a porous medium. Transp Porous Med 71:23–37

    Article  MathSciNet  Google Scholar 

  37. Sisko AW (1958) The flow of lubricating greases. Ind Eng Chem 50:1789–1792

    Article  Google Scholar 

  38. Munir A, Shahzad A, Khan M (2015) Convective flow of Siskofluid over a bidirectional stretching surface. PLoS One 10(6):e0130342

    Article  Google Scholar 

  39. Shahzad A, Ali R (2012) Approximate analytic solution for magneto-hydrodynamic flow of a non-Newtonian fluid over a vertical stretching sheet. Can J Appl Sci 2:202–215

    Google Scholar 

  40. Shahzad A, Ali R (2013) MHD flow of a non-Newtonian power law fluid over a vertical stretching sheet with the convective boundary condition Walailak. J Sci Tech 10(1):43–56

    Google Scholar 

  41. Ahmed J, Mahmood T, Iqbal Z, Shahzad A, Ali R (2016) Axisymmetric flow and heat transfer over an unsteady stretching sheet in power law fluid. J Mol Liq 221:386–393

    Article  Google Scholar 

  42. Shahzad A, Ali R, Hussain M, Kamran M (2016) Unsteady axisymmetric flow and heat transfer over time- dependent radially stretching sheet. Alexandria Eng J. doi:10.1016/j.aej.2016.08.030

  43. Ahmed J, Begum A, Shahzad A, Ali R (2016) MHD axisymmetric flow of power-law fluid over an unsteady stretching sheet with convective boundary conditions. Res Phy 6:973–981

    Google Scholar 

  44. Ellah R (2013) The effects of MHD and temperature dependent viscosity on the flow of non-Newtonian nanofluid in a pipe: analytical solutions. Appl Math Mod 37(3):1451–1457

    Article  MATH  MathSciNet  Google Scholar 

  45. Rashidi S, Dehghan M, Ellahi R, Riaz M (2015) Study of stream wise transverse magnetic fluid flow with heat transfer around a porous obstacle. J Mag Mag Mat 378:128–137

    Article  Google Scholar 

Download references

Author information

Authors and Affiliations

Authors

Corresponding author

Correspondence to Waqar Azeem Khan.

Additional information

Technical Editor: Jader Barbosa Jr.

Rights and permissions

Reprints and permissions

About this article

Check for updates. Verify currency and authenticity via CrossMark

Cite this article

Khan, M., Ahmad, L. & Khan, W.A. Numerically framing the impact of radiation on magnetonanoparticles for 3D Sisko fluid flow. J Braz. Soc. Mech. Sci. Eng. 39, 4475–4487 (2017). https://doi.org/10.1007/s40430-017-0842-5

Download citation

  • Received:

  • Accepted:

  • Published:

  • Issue Date:

  • DOI: https://doi.org/10.1007/s40430-017-0842-5

Keywords

Navigation